The paper derives Hawking temperatures, particle densities, greybody bounds, and evaporation lifetimes for two bumblebee black hole models, and asserts very tight astrophysical constraints on the Lorentz-violating parameters ℓ and X.
Thermodynamics of massless particles in curved spacetime
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abstract
This work is devoted to study the behavior of massless particles within the context of curved spacetime. In essence, we investigate the consequences of the scale factor $C(\eta)$ of the Friedmann-Robertson-Walker metric in the Einstein-aether formalism to study photon-like particles. To do so, we consider the system within the canonical ensemble formalism in order to derive the following thermodynamic state quantities: spectral radiance, Helmholtz free energy, pressure, entropy, mean energy and the heat capacity. Moreover, the correction to the Stefan-Boltzmann law and the equation of states are also provide. Particularly, we separate our study within three distinct cases, i.e., $s=0,p=0$; $s=1,p=1$; $s=2,p=1$. In the first one, the results are derived numerically. Nevertheless, for the rest of the cases, all the calculations are accomplished analytically showing explicitly the dependence of the scale factor $C(\eta)$ and the Riemann zeta function $\xi(s)$. Furthermore, our analyses are accomplished in general taking into account three different regimes of temperature of the universe, i.e., the inflationary era ($T=10^{13}$ GeV), the electroweak epoch ($T=10^{3}$ GeV) and the cosmic microwave background ($T=10^{-13}$ GeV).
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How does non-metricity affect particle creation and evaporation in bumblebee gravity?
The paper derives Hawking temperatures, particle densities, greybody bounds, and evaporation lifetimes for two bumblebee black hole models, and asserts very tight astrophysical constraints on the Lorentz-violating parameters ℓ and X.